Insulin-Regulated Actin Dynamics is Disrupted in a Human Keratinocyte Model of Hailey Hailey Disease
Ruby Gupta, Akash Chinchole, Ngozi P. Paul, Mrinal K. Sarkar, Johann E. Gudjonsson, Ajay Verma, Rajini RaoThe secretory pathway Ca 2+ -ATPase, SPCA1 (gene name ATP2C1) is a Golgi-localized calcium pump defective in the autosomal dominant cutaneous disorder known as Hailey Hailey Disease (HHD). Although clinically well characterized by suprabasal acantholysis and intertriginous blistering of the skin, the mechanistic underpinnings of the disease are still unclear. Here we use CRISPR/Cas9 mediated single and bi-allelic ATP2C1 knockouts in immortalized human N/TERT keratinocytes to show that SPCA1 is required for dynamic reorganization of actin cytoskeleton in keratinocyte spreading, which is the primary mechanism driving skin re-epithelialization. We identify an insulin-activated PI3K-AKT-Rac1 signaling pathway required for lamellipodia formation and keratinocyte spreading, defective in SPCA1 knockout cell lines. Our findings may explain the poor wound healing and impaired keratinocyte migration observed in HHD and may be relevant to the observed effect of insulin on wound healing, including diabetic wounds and burns, reported for nearly a century. Transgenic expression of hSPCA1 or treatment with CDN1163, a small molecule Ca 2+ -ATPase agonist, restored defective phenotypes in the HHD model, paving the way for future therapeutic approaches to treat this disorder.